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BrainK for Structural Image Processing: Creating Electrical Models of the Human Head

机译:用于结构图像处理的BrainK:创建人头的电气模型

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摘要

BrainK is a set of automated procedures for characterizing the tissues of the human head from MRI, CT, and photogrammetry images. The tissue segmentation and cortical surface extraction support the primary goal of modeling the propagation of electrical currents through head tissues with a finite difference model (FDM) or finite element model (FEM) created from the BrainK geometries. The electrical head model is necessary for accurate source localization of dense array electroencephalographic (dEEG) measures from head surface electrodes. It is also necessary for accurate targeting of cerebral structures with transcranial current injection from those surface electrodes. BrainK must achieve five major tasks: image segmentation, registration of the MRI, CT, and sensor photogrammetry images, cortical surface reconstruction, dipole tessellation of the cortical surface, and Talairach transformation. We describe the approach to each task, and we compare the accuracies for the key tasks of tissue segmentation and cortical surface extraction in relation to existing research tools (FreeSurfer, FSL, SPM, and BrainVisa). BrainK achieves good accuracy with minimal or no user intervention, it deals well with poor quality MR images and tissue abnormalities, and it provides improved computational efficiency over existing research packages.
机译:BrainK是一套用于从MRI,CT和摄影测量图像中表征人的头部组织的自动化程序。组织分割和皮质表面提取支持使用从BrainK几何形状创建的有限差分模型(FDM)或有限元模型(FEM)对通过头组织的电流传播进行建模的主要目标。电头模型对于从头表面电极对密集阵列脑电图(dEEG)进行精确的源定位是必不可少的。从这些表面电极经颅电流注入以精确靶向大脑结构也是必要的。 BrainK必须完成五项主要任务:图像分割,MRI,CT和传感器摄影图像的配准,皮质表面重建,皮质表面的偶极细分和Talairach变换。我们描述了每种任务的方法,并比较了与现有研究工具(FreeSurfer,FSL,SPM和BrainVisa)相关的组织分割和皮质表面提取关键任务的准确性。 BrainK可以在最少或没有用户干预的情况下实现良好的准确性,可以很好地处理质量较差的MR图像和组织异常,并且与现有研究工具包相比,可以提供更高的计算效率。

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